4.6 Article

Engineering of ZnCo-layered double hydroxide nanowalls toward high-efficiency electrochemical water oxidation

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 2, 期 33, 页码 13250-13258

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4ta01275e

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资金

  1. 973 Program [2011CBA00506]
  2. National Natural Science Foundation of China [21376020]
  3. Program for Changjiang Scholars and Innovative Research Team in University [IRT1205]
  4. Jiangsu Key Laboratory of Fine Petrochemical Engineering

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The construction of highly efficient etectrocatalysts for water splitting has played an important role in developing sustainable energy sources. Herein, binary zinc cobalt layered double hydroxide (ZnCo-LDH) films were directly grown on a conductive metal foil by a facile electrodeposition method. The as-deposited ZnCo-LDH films were composed of highly oriented nanowalls with the ab plane vertical to the substrate. The interconnected two-dimensional (2D) LDH nanosheets acted as basic units for the nanowall architectures, which exhibited excellent catalytic activity for electrochemical water oxidation in alkali solution. The onset overpotential of the optimal LDH catalyst for oxygen-evolving reactions is similar to 0.33 V in an alkali solution, superior or comparable to those of well-known Co-based electrocatalysts (e.g. Co3O4). The turnover frequencies (TOFs) of ZnCo-LDH catalysts show a linear dependence on the overpotentiats, higher than that of monometallic cobalt hydroxide at the overpotential beyond 0.55 V. For instance, at the overpotentiat of 0.7 V. the TOF value (3.56 s(-1)) of the optimal LDH is 1.7 times higher than that of monometallic cobalt hydroxide and is 4 times higher than that of LDH powder prepared by a co-precipitation method. The high catalytic activity is attributed to the highly sufficient exposure of accessible active sites on the vertically grown 2D nanosheets. Therefore, this study provides an effective way for preparing high-performance electrocatalysts based on LDH nanosheets, which are beneficial to practical engineering applications owing to their robust binding and integrated construction on metal substrates with any desirable shape.

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